Compliant shear layer for elevator termination
11111105 ยท 2021-09-07
Assignee
Inventors
- Walter Thomas Schmidt (Marlborough, CT, US)
- Joseph C. Rampone (Colchester, CT, US)
- Daniel A. Mosher (Glastonbury, CT, US)
Cpc classification
B66B7/08
PERFORMING OPERATIONS; TRANSPORTING
International classification
B66B7/08
PERFORMING OPERATIONS; TRANSPORTING
B66B9/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A termination device for a suspension member of an elevator system includes a housing and a wedge assembly located in the housing. The wedge assembly includes a wedge interactive with the housing to apply a clamping force to the suspension member in response to an axial load acting on the suspension member and a compliant shear element secured to the wedge or the suspension member and configured to reduce shear loads on the suspension member.
Claims
1. A termination device for a suspension member of an elevator system comprising: a housing; and a two wedge assemblies disposed in the housing and located at opposing sides of the suspension member, each wedge assembly including: a wedge interactive with the housing to apply a clamping force to the suspension member in response to an axial load acting on the suspension member; and a compliant shear element secured to the wedge or the suspension member and configured to reduce shear loads on the suspension member; wherein the compliant shear element is secured to the wedge via two or more tabs disposed at one of the compliant shear element or a wedge inner surface of the wedge, the two or more tabs engageable with two or more slots in the other of the wedge inner surface or the compliant shear element; wherein the compliant shear element is formed from one of a thermoplastic urethane or elastomeric material; wherein the compliant shear element includes a plurality of friction-enhancing features to produce a desired frictional force between the compliant shear element and the suspension member, the plurality of friction-enhancing features including a plurality of faceted elements arrayed across a lateral width of the compliant shear element.
2. The termination device of claim 1, wherein the compliant shear element is secured to the wedge inner surface and is configured to abut the suspension member.
3. The termination device of claim 2, wherein the wedge assembly includes a wedge outer surface opposite the wedge inner surface, the wedge outer surface abutting a housing inner surface.
4. The termination device of claim 1, wherein the compliant shear element is secured to one of the wedge or the suspension member via one or more of an adhesive, a mechanical fastener or a mechanically interlocking feature.
5. The termination device of claim 1, wherein the compliant shear element has a stiffness in the range of 0.025 and 1.0 Giga Pascals.
6. An elevator system comprising: a hoistway; an elevator car disposed in the hoistway; a suspension member operably connected to the elevator car to suspend and/or drive the elevator car along the hoistway; and a termination device disposed in the hoistway and operably connected to a suspension member end of the suspension member, the termination device including: a housing; and a two wedge assemblies disposed in the housing and located at opposing sides of the suspension member, each wedge assembly including: a wedge interactive with the housing to apply a clamping force to the suspension member in response to an axial load acting on the suspension member; and a compliant shear element secured to the wedge or the suspension member and configured to reduce shear loads on the suspension member; wherein the compliant shear element is secured to the wedge via two or more tabs disposed at one of the compliant shear element or a wedge inner surface of the wedge, the two or more tabs engageable with two or more slots in the other of the wedge inner surface or the compliant shear element; wherein the compliant shear element is formed from one of a thermoplastic urethane or elastomeric material; wherein the compliant shear element includes a plurality of friction-enhancing features to produce a desired frictional force between the compliant shear element and the suspension member, the plurality of friction-enhancing features including a plurality of faceted elements arrayed across a lateral width of the compliant shear element.
7. The termination device of claim 6, wherein the compliant shear element is secured to the wedge inner surface and abuts the suspension member.
8. The termination device of claim 7, wherein the wedge assembly includes a wedge outer surface opposite the wedge inner surface, the wedge outer surface abutting a housing inner surface.
9. The termination device of claim 6, wherein the compliant shear element is secured to the wedge via one or more of an adhesive, a mechanical fastener or a mechanically interlocking feature.
10. The termination device of claim 6, wherein the compliant shear element has a stiffness in the range of 0.025 and 1.0 Giga Pascals.
11. The elevator system of claim 6, wherein the suspension member includes: a plurality of tension elements extending along a length of the suspension member, each tension element including a plurality of fibers extending along the length of the suspension member bonded into a polymer matrix; and a jacket substantially retaining the plurality of tension members.
12. The elevator system of claim 11, wherein the plurality of fibers are formed from one or more of carbon, glass, polyester, nylon, or aramid material.
13. The elevator system of claim 11, wherein the compliant shear element is configured to reduce shear forces between the plurality of tension elements and the jacket.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The subject matter is particularly pointed out and distinctly claimed at the conclusion of the specification. The foregoing and other features, and advantages of the present disclosure are apparent from the following detailed description taken in conjunction with the accompanying drawings in which:
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DETAILED DESCRIPTION
(9) Shown in
(10) The sheaves 18 each have a diameter 20, which may be the same or different than the diameters of the other sheaves 18 in the elevator system 10. At least one of the sheaves could be a traction sheave 24. The traction sheave 24 is driven by a machine 26. Movement of drive sheave by the machine 26 drives, moves and/or propels (through traction) the one or more belts 16 that are routed around the traction sheave 24. At least one of the sheaves 18 could be a diverter, deflector or idler sheave. Diverter, deflector or idler sheaves are not driven by a machine 26, but help guide the one or more belts 16 around the various components of the elevator system 10.
(11) In some embodiments, the elevator system 10 could use two or more belts 16 for suspending and/or driving the elevator car 12. In addition, the elevator system 10 could have various configurations such that either both sides of the one or more belts 16 engage the one or more sheaves 18 or only one side of the one or more belts 16 engages the one or more sheaves 18. The embodiment of
(12) The belts 16 are constructed to have sufficient flexibility when passing over the one or more sheaves 18 to provide low bending stresses, meet belt life requirements and have smooth operation, while being sufficiently strong to be capable of meeting strength requirements for suspending and/or driving the elevator car 12.
(13)
(14) Referring now to
(15) Referring now to
(16) A shear element 62 is located between the wedge inner surface 60 and the belt 16. The shear element 62 is configured to relax the shear loading on the belt 16, particularly at the interface between the tension elements 28 and the jacket 44, reducing shear levels at this interface to prevent damage to or failure of the interface. The shear element 62 is a compliant element, and is formed from, for example, a thermoplastic urethane (TPU), rubber or elastomeric material. In some embodiments, a stiffness of the shear element 62 is between about 0.025 and 1.0 Giga Pascals.
(17) As shown in the graph of
(18) Referring again to
(19) Referring now to
(20) The shear element 62 reduces shear forces at the jacket 44 and tension element 28 interface, thus reducing risk of damage and/or failure of the interface and reducing the risk of tension element 28 slippage at the termination 46.
(21) While the present disclosure has been described in detail in connection with only a limited number of embodiments, it should be readily understood that the present disclosure is not limited to such disclosed embodiments. Rather, the present disclosure can be modified to incorporate any number of variations, alterations, substitutions or equivalent arrangements not heretofore described, but which are commensurate in spirit and/or scope. Additionally, while various embodiments have been described, it is to be understood that aspects of the present disclosure may include only some of the described embodiments. Accordingly, the present disclosure is not to be seen as limited by the foregoing description, but is only limited by the scope of the appended claims.